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hello i want to use my mysql result to build the json objects. my first query is fetching parent menu and another query is fetching child menu so i am going to put my child menu result under the parent menu.. i want to know what is wrong with my code and how to correct

<?php
    $selectparentMenu=mysql_query("SELECT `id`,`item_name`,`menu_type`,`parent` FROM `epic_master_menu` where parent=0");
    //echo $myfetch=mysql_fetch_array($selectMenu);
        if(mysql_num_rows($selectparentMenu)>1) {
    while($fetchparentMenu=mysql_fetch_array($selectparentMenu)) {
         //echo 'parent id is' .$parentId=$fetchparentMenu['id']. '<br/>';
        // echo 'parent name is' .$parentId=$fetchparentMenu['item_name']. '<br/>';


         $selectchildMenu=mysql_query("SELECT `id` , `item_name` , `menu_type` , `parent` FROM `epic_master_menu`
    WHERE parent >0 AND `menu_type` = 'item' AND `parent` ='".$fetchparentMenu['id']."'");
    if(mysql_num_rows($selectchildMenu)>1) {
         while($fetchchildMenu=mysql_fetch_array($selectchildMenu)) {

             $textjson = '{
    "dataSource": [{
            "id": "", "text": "Select All", "expanded": "true", "spriteCssClass": "rootfolder", "items": [
                {
                    "id": "'.$fetchparentMenu["id"].'", "text": "'.$fetchparentMenu["item_name"].'", "expanded": true,"spriteCssClass": "folder", "items": [
                        { "id": "'.$fetchchildMenu["id"].'", "text": "'.$fetchparentMenu["item_name"].'", "spriteCssClass": "html" },
                        { "id": "'.$fetchchildMenu["id"].'", "text": "'.$fetchparentMenu["item_name"].'", "spriteCssClass": "html" },
                        { "id": "'.$fetchchildMenu["id"].'", "text": "'.$fetchparentMenu["item_name"].'", "spriteCssClass": "image" }
                    ]
                }
            ]
        }]
    }';

             }  }

         /* $fetchMenu['item_name'];
           $fetchMenu['menu_type'];
           $fetchMenu['parent'];*/
        //print_r($fetchMenu);
        } }

// my json data is

 $textjson = '{
"dataSource": [{
        "id": 1, "text": "My Documents", "expanded": "true", "spriteCssClass": "rootfolder", "items": [
            {
                "id": 2, "text": "Project", "expanded": true,"spriteCssClass": "folder", "items": [
                    { "id": 3, "text": "about.html", "spriteCssClass": "html" },
                    { "id": 4, "text": "index.html", "spriteCssClass": "html" },
                    { "id": 5, "text": "logo.png", "spriteCssClass": "image" }
                ]
            },
            {
                "id": 6, "text": "New Web Site", "expanded": true, "spriteCssClass": "folder", "items": [
                    { "id": 7, "text": "mockup.jpg", "spriteCssClass": "image" },
                    { "id": 8, "text": "Research.pdf", "spriteCssClass": "pdf" }
                ]
            },
            {
                "id": 9, "text": "Reports", "expanded": true, "spriteCssClass": "folder", "items": [
                    { "id": 10, "text": "February.pdf", "spriteCssClass": "pdf" },
                    { "id": 11, "text": "March.pdf", "spriteCssClass": "pdf" },
                    { "id": 12, "text": "April.pdf", "spriteCssClass": "pdf" }
                ]
            }
        ]
    }]
}';
share|improve this question
1  
why not make use of json_encode() ? –  Shankar Damodaran Feb 25 '14 at 8:51
    
would you please clarify it i mean where and how should i implement –  Sachin Feb 25 '14 at 8:53

2 Answers 2

Instead of creating your own version.. you could simply make use of json_encode()

while($fetchchildMenu=mysql_fetch_array($selectchildMenu))
 {
      $somearr[]=$fetchchildMenu;
 }

$jsonData = json_encode($somearr);
echo $jsonData; //<---- Prints your JSON data
share|improve this answer
    
i have my own json format and i just want to insert my query record on it –  Sachin Feb 25 '14 at 8:54
2  
so format the array to your format and then use json_encode on it –  Robert Feb 25 '14 at 8:55
1  
@Sachin, Creating your own version is a pretty headache. Do like Robert mentioned. –  Shankar Damodaran Feb 25 '14 at 8:56
    
this is my json formta –  Sachin Feb 25 '14 at 8:56
    
i know how to encode the array into json.. but i am actuly not getting how to build an array that will display in my json format –  Sachin Feb 25 '14 at 9:02

Its much easier to use the included json functions from PHP. Here you can use json_encode to create a json string from an array.

$childArray = array();

while($fetchchildMenu=mysql_fetch_array($selectchildMenu)) {
   $childArray[] = array(
       'id' => $fetchchildMenu['id'],
       'text' => $fetchchildMenu['text']
   );
}

$jsonDataChilds = json_encode($childArray);
echo $jsonDataChilds;
share|improve this answer
    
i have edited my question i have put my json format there so if i want to use array then how i need to build the array by using the same format of json. –  Sachin Feb 25 '14 at 8:59
    
To avoid mistakes in your schema its easier to build an array and convert it to the final json string using the json functions. Don't reinvent the wheel its not necessary. –  Stony Feb 25 '14 at 9:01
    
i just want to know how to build an array which will show me my required json format.. –  Sachin Feb 25 '14 at 9:07

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